材料科学
光催化
等离子体子
钴
光热治疗
上部结构
光电子学
氧化钴
纳米颗粒
等离子纳米粒子
纳米技术
催化作用
光化学
化学
冶金
地质学
海洋学
生物化学
作者
Kai Feng,Shenghua Wang,Dake Zhang,Lu Wang,Yingying Yu,Kun Feng,Li Zhao,Zhongkui Zhu,Chaoran Li,Mujin Cai,Zhiyi Wu,Ning Kong,Binhang Yan,Jun Zhong,Xiaohong Zhang,Geoffrey A. Ozin,Le He
标识
DOI:10.1002/adma.202000014
摘要
Abstract The efficiency of heterogeneous photocatalysis for converting solar to chemical energy is low on a per photon basis mainly because of the difficulty of capturing and utilizing light across the entire solar spectral wavelength range. This challenge is addressed herein with a plasmonic superstructure, fashioned as an array of nanoscale needles comprising cobalt nanocrystals assembled within a sheath of porous silica grown on a fluorine tin oxide substrate. This plasmonic superstructure can strongly absorb sunlight through different mechanisms including enhanced plasmonic excitation by the hybridization of Co nanoparticles in close proximity, as well as inter‐ and intra‐band transitions. With nearly 100% sunlight harvesting ability, it drives the photothermal hydrogenation of carbon dioxide with a 20‐fold rate increase from the silica‐supported cobalt catalyst. The present work bridges the gap between strong light‐absorbing plasmonic superstructures with photothermal CO 2 catalysis toward the complete utilization of the solar energy.
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